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Computer Vision Engineer Jobs (Remote work)

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Principal Computer Vision Engineer
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Lead computer vision initiatives for real-world AI systems in autonomous vehicles, industrial inspection, and medical imaging. This principal role requires 7+ years of expertise in production CV pipelines, sensor fusion, and frameworks like PyTorch. You will design robust perception systems, ment...
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United States
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Not provided
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Darwin Recruitment GmbH
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Until further notice
Principal Computer Vision Engineer
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Lead the development of production-grade computer vision pipelines for real-world autonomous systems in San Francisco. This senior role requires 7+ years of expertise in CV, sensor data processing, and frameworks like PyTorch. You will design scalable perception solutions and mentor engineers, en...
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United States , San Francisco
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Not provided
darwinrecruitment.com Logo
Darwin Recruitment GmbH
Expiration Date
Until further notice
Explore the frontier of artificial perception with Computer Vision Engineer jobs. This dynamic and rapidly evolving profession sits at the exciting intersection of software engineering, machine learning, and image science. Computer Vision Engineers are the architects of systems that enable machines to see, interpret, and understand the visual world. They transform pixels into actionable data, building the core intelligence for a vast array of modern technologies, from augmented reality and autonomous vehicles to medical diagnostics and industrial automation. Professionals in this field are typically responsible for the end-to-end development of vision-based solutions. Common duties include researching, designing, and implementing robust algorithms for tasks like object detection, recognition, tracking, and image segmentation. They work extensively on 3D vision problems, including depth estimation, stereo vision, and 3D reconstruction. A significant part of the role involves developing and optimizing deep learning models, particularly Convolutional Neural Networks (CNNs), and preparing large-scale datasets for training. Engineers are also tasked with the practical integration of these algorithms into real-time, production-ready systems, which includes performance optimization, sensor fusion, and rigorous testing. Collaboration with cross-functional teams, such as robotics, hardware, and product development, is standard to ensure seamless implementation. The typical skill set for Computer Vision Engineer jobs is both deep and broad. A strong foundation in linear algebra, calculus, probability, and statistics is essential. Proficiency in programming languages like Python and C++ is a near-universal requirement, alongside expert-level experience with core libraries and frameworks such as OpenCV, PyTorch, and TensorFlow. Engineers must possess a solid understanding of classical computer vision techniques as well as state-of-the-art deep learning architectures. Practical experience with camera hardware, calibration, and the entire imaging pipeline is highly valuable. Furthermore, skills in software engineering best practices, cloud deployment (e.g., AWS, GCP), and MLOps are increasingly important for bringing models from research to reality. Successful candidates usually hold an advanced degree (Master’s or PhD) in Computer Science, Electrical Engineering, Robotics, or a related field, though substantial practical experience can also be qualifying. They are inherently curious, excellent problem-solvers, and possess the ability to translate complex visual problems into efficient algorithmic solutions. For those passionate about pushing the boundaries of how machines interact with the world, Computer Vision Engineer jobs offer a challenging and profoundly impactful career path at the cutting edge of technology.

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